A NOVEL HYBRID FORWARD OSMOSIS- NANOFILTRATION TECHNOLOGY FOR SEAWATER DESALINATION

Size: px
Start display at page:

Download "A NOVEL HYBRID FORWARD OSMOSIS- NANOFILTRATION TECHNOLOGY FOR SEAWATER DESALINATION"

Transcription

1 A NOVEL HYBRID FORWARD OSMOSIS- NANOFILTRATION TECHNOLOGY FOR SEAWATER DESALINATION New Shi Lin Serene, Wee Lay Kit Jasmine Hwa Chong Institution (College) 661, Bukit Timah Road, Singapore Mentored by: A/P Ng How Yong, Tan Chien Hsiang (NUS Division of Environmental Science & Engineering) 1

2 SUMMARY Reverse osmosis (RO) is the leading technology used for seawater desalination. It is effective in water reclamation but requires a large amount of pumping energy. This project aims to develop a novel hybrid forward osmosis (FO) - nanofiltraton (NF) technology for seawater desalination which lowers the energy requirement for seawater desalination. A dual salt technology was proposed for the FO process, with the combinations of firstly, sodium sulfate and magnesium sulfate, secondly, magnesium chloride and magnesium sulfate. From our results, the combination of magnesium chloride and magnesium sulfate (1:1 proportion) yielded better water flux than sodium sulfate and magnesium sulfate. 2

3 ABSTRACT Currently, the reverse osmosis process (RO) is one of the main technologies used for seawater desalination. It is effective in water reclamation but requires a large amount of pumping energy. Hence, there is a need to develop novel technology to lower the energy requirement for seawater desalination. The aim of this project is to develop a novel hybrid forward osmosis (FO) - nanofiltraton (NF) technology for seawater desalination. The FO process relies on the concentration difference between two solutions as a driving force to transport water across a semi-permeable membrane. It can remove all other salts and impurities of seawater, and the permeate water contains only a single solute. Nanofiltration (NF) will then be used to obtain clean water and recycle the solute for use in the FO process. In this project, a dual salt technology was proposed for the FO process, with the combinations of firstly, sodium sulfate and magnesium sulfate, secondly, magnesium chloride and magnesium sulfate. We tested the dual salts in different proportions and concentrations to investigate the optimal operating parameters for both FO and NF combined. From the results obtained, the combination of magnesium chloride and magnesium sulfate yielded better water flux than sodium sulfate and magnesium sulfate. The magnesium chloride-magnesium sulfate (1:3) obtained better flux and rejection in NF while 3:1 excelled in FO. Hence, it was concluded that the 1:1 was the optimum proportion. BACKGROUND AND PURPOSE OF RESEARCH AREA Membrane processes, particularly reverse osmosis (RO) is currently one of the most successful technology for water reclamation and seawater desalination. However, with the increasing cost of energy, further reduction in energy consumption is desirable. Recently, the forward osmosis (FO) process is being actively studied by various researchers as an alternative membrane technology for water reclamation due to its low energy requirement and high water recovery. The FO process requires a draw solution that has a higher osmotic pressure than the feed solution. It utilizes an osmotic pressure gradient across a highly-selective membrane, such that only water can permeate from the feed solution through the membrane via osmosis to the draw solution. Various draw solutions at high concentration can have exceedingly large osmotic pressure, which may potentially lead to a much higher water flux and recoveries as compared to the more expensive RO which utilizes hydraulic pressure. The experimental set-up below as depicted in Fig 1 desalinates sea water (feed solution) to produce clean product water. The set-up consists of a forward osmosis (FO) 3

4 module and a nanofiltration (NF) module. Water molecules from the feed solution pass through the membrane via osmosis into the draw solution due to the difference in osmotic pressure of the two solutions, while the salt in the feed solution is retained. Draw solutes which have high osmotic pressure can be used in the draw solution. Subsequent to the FO module is the NF module that is used to reconcentrate the diluted draw solution to be reused as the concentrated draw solution for the FO module. At the same time, the NF module, which makes use of hydraulic pressure (about 50% of the pumping energy used in RO), is capable of rejecting more than 98% of many different draw solutes to produce clean product water for human consumption and other usages. Fig 1: Schematic diagram of the FO-NF hybrid experimental Set-up (software: Microsoft Word 2003) The study on the use of the FO process first started in Batchelder [1] used the FO process for the desalination of seawater. Following which, several scientists including Glew [2], Frank [3] and Kravath [4] utilized a number of different draw solutions. Most notably, Stache [5] pioneered the use of the FO process to design an osmotic bag to produce a drinkable water source from seawater for emergency use. The key design for the osmotic bag is being currently adopted by Hydration Technologies Inc. for the commercial production of osmotic water bag that can be used for many purposes. The central issues that had remained unsolved up till now are that the water production rate per membrane area (water flux) for the FO process is still relatively lower than other membrane processes, and that the draw solutes were diluted sufficiently for direct consumption and no ideal draw solutes can be removed from the draw solutions to produce clean product water. Consequently, future studies on the FO process involve investigations that permit the use of the FO process for large-scale production of clean water. Currently, the leading scientists on FO research are Professor Elimelech s group at the Yale University and Professor Ng s group at the National University of Singapore. McCutcheon et al. [6] presented a novel ammonia-carbon dioxide FO process for seawater desalination and a pilot plant was set up [7]. FO process had also been developed by 4

5 Holloway et al. [8] for the concentration of anaerobic digester concentrate with much success. It is also currently being used in the FO/RO process for landfill leachate treatment [9]. FO process is also actively being used as a process for the direct osmotic concentration of liquid food [10]. Tang et al. [11] proposed the use of the FO process for brine concentration for brine disposal, which is critical for inland desalination. HYPOTHESIS OF RESEARCH In this project, a dual-salt draw solution was hypothesized to replace a single salt draw solute in the hybrid FO-NF process. It is predicted that a dual salt draw solution will perform better than a single salt draw solute in terms of achieving a higher water flux in FO and salt rejection in NF. The hybrid FO-NF system is expected to desalinate seawater to produce drinking water that meets the WHO conductivity guideline for drinking water. MATERIALS AND METHODS Fig 2: Schematic diagram of the Forward osmosis experimental Set-up (software: Microsoft Word 2003) The schematic diagram of the FO experimental set-up as shown in Fig 2 above depicts the first apparatus used in this study. The heater is used to maintain a constant temperature of the solutions throughout the experiment. The stirrer ensures that the solutions are homogenous and the pump keeps a constant cross flow rate across the membrane. The scale which is connected to the data logger is used to measure the change in mass of the feed solution to calculate the water flux, which is given in cubic meter per square meter of membrane per second (m/s) or gallons per square feet per day (GFD). The feed solution that is used is either deionized Na 2 SO 4 -MgSO 4 or MgCl 2 -MgSO 4. The concentration of the dual salts used ranges from 40g/L to 120g/L. The FO membrane (Hydration Technologies Inc., Albany, OR) used is made from cellulose acetate and is highly hydrophilic. It consists of a woven support mesh embedded within the membrane. 5

6 Fig 3: Schematic diagram of the Nano-filtration experimental Set-up (software: Microsoft Word 2003) The second part of our experiment consists of the NF set up as shown in Fig 3. The NF set up consists of the feed solution tank, a cooler, the NF membrane cell. The feed solution tank stores the diluted draw solution from the FO process. The feed solution passes through the NF membrane cell which consists of the NF membrane in reverse mode (dense layer facing feed solution). The feed solutions, namely Na 2 SO 4 -MgSO 4 and MgCl 2 -MgSO 4 were tested in different dilution range from 40g/L to 120g/L to compare the water flux and solute rejection. RESULTS AND DISCUSSION Selection of dual-salts Water flux (m/s) Effect of different draw solutes on water flux Na2SO4 MgCl2 NaCl CaCl2 KCl MgSO4 Fructose Glucose Water flux (GFD) Osmotic pressure difference (atm) 0 Fig 4: Graph of different draw solutes against water flux in FO (software: Microsoft Excel 2003) Fig 4 shows the effect of different draw solutes on the water flux obtained during FO. It was observed that MgSO 4 produced a high water flux and high solute rejection in the FO process. In order to obtain the most desirable water flux and solute rejection, a combination of solutes to obtain a high water flux and high solute rejection in both the FO and NF process must be achieved. Comparing the results with the other solutes, Na 2 SO 4 and MgCl 2 was 6

7 shortlisted as well. Solutes with divalent ions (SO 2-4, Mg 2+ ) are predicted to have higher rejection and since the water flux achieved is relatively high, they are the 2 most promising draw solutes to complement MgSO 4 to make up dual-salts draw solution. Effect of draw solute concentration on water flux for FO Fig 5: Graph of water flux against concentration of draw solute in FO (software: Microsoft Excel 2003) From Fig 5, MgCl 2 -MgSO 4 (3:1) and MgCl 2 -MgSO 4 (1:1) achieved the top 2 highest water flux among the 5 dual-salts draw solutes during FO. The water flux achieved by MgCl 2 -MgSO 4 (3:1) was more than 2 times and the water flux achieved by MgCl 2 -MgSO 4 (1:1) was approximately 2 times that achieved by the remaining three draw solutes. As the concentration of the draw solute increases, the concentration gradient between the feed and draw solution becomes steeper and increases the driving force, hence the water flux obtained during FO increases proportionately. Na 2 SO 4 -MgSO 4 combination yielded a very low water flux which made it an infeasible component of the dual-salt draw solute. The MgCl 2 -MgSO 4 combination showed more potential to be the more ideal draw solute due to its much better performance in the FO process. Effect of feed solution concentration on water flux for NF Fig 6: Graph of NF water flux against feed solution concentration at 40 bar (software: Microsoft Excel 2003) 7

8 It is theorized that the concentration of the feed solution used in the NF process can affect the water flux. Fig 6 shows the effect of the feed solution concentration on the water flux. It can be observed that as the concentration of the feed solution increased from 40g/L to 120g/L, the water flux decreased proportionately. Therefore it can be concluded that a lower concentration of the feed solution would result in a higher water flux and vice versa. This is because when the diluted draw solution from the FO process enters the NF process, it generates an opposing osmotic pressure. In the graph in Fig 6, we considered the results for the different NF feed solutions at a pressure of 40 bar. A higher concentration of the feed solution would result in a high osmotic pressure, which effectively reduces the overall driving force of the NF process. Hence, the water flux is lower when the solution concentration is higher. Fig 6 shows that as the proportion of MgCl 2 increases, the water flux achieved in FO increases while the water flux achieved in NF decreases. On the other hand, as the proportion of MgSO 4 increases, the water flux achieved in FO decreases while the water flux achieved in NF increases. Hence, in order to ensure relatively good performance for both FO and NF, the proposed feed solution proportion is MgCl 2 -MgSO 4 (1:1). Effect of feed solution concentration on solute rejection for NF Fig 7: Graph of NF solute rejection against feed solution concentration at 40 bar (software: Microsoft Excel 2003) Fig 7 shows the effect of the feed solution concentration on the NF solute rejection at a constant pressure of 40 bar. As the feed solution concentration increases from 40g/L to 120g/L, the NF solute rejection decreased proportionately. As the feed solution becomes more concentrated, the proportion of solute present increases and hence decreasing the NF solute rejection. Generally, the rejection ranges between 25% to 95% for both dual-salt draw solutes. However, due to advances in research and development, the performance of NF membranes has improved tremendously in recent years and is expected to continue doing so 8

9 in the future. Hence, it is realistic to expect to maintain the NF solute rejection above 80% to 90%. Effect of pressure on water flux for NF Fig 8: Graph of water flux against pressure for 8.1: MgCl 2 -MgSO 4 (3:1); 8.2: MgCl 2 -MgSO 4 (1:1); 8.3: MgCl 2 -MgSO 4 (1:3); 8.4: Na 2 SO 4 -MgSO 4 (3:1); 8.5: Na 2 SO 4 -MgSO 4 (1:1) (software: Microsoft Excel 2003) Fig 8.1 to Fig 8.5 show the effect of the pressure of the system on the water flux obtained during NF. The 5 graphs observed similar trends that displayed that as pressure increases, a higher driving force results in a higher water flux obtained. To ensure the efficiency of the system, the water flux should be kept above 5 LMH. Hence, a recommended pressure for the system to be subjected to during first pass NF is 600 Psi or 40 bars and above. 9

10 Prediction and comparison of water quality Fig 9: Table for prediction and comparison of water quality.(software: Microsoft Word 2003) Dual-salts Draw Salt Draw Solution 1 st Pass Permeate 2 nd Pass Permeate WHO Conductivity Solute Ratio Concentration Conductivity Conductivity Guideline (µs/cm) (g/l) (µs/cm) (µs/cm) MgCl 2 -MgSO 4 3: MgCl 2 -MgSO 4 1: MgCl 2 -MgSO 4 1: Na 2 SO 4 -MgSO 4 3: Na 2 SO 4 -MgSO 4 1: Fig 9 shows the predicted conductivity values of the first and second pass permeates in NF for the two dual-salts draw solutes in different proportions. It also provides a comparison of water quality with the current World Health Organization (WHO) drinking water conductivity guidelines. It is observed that all 2 nd pass permeates produced by the 2- pass NF re-concentration scheme, with the exception of MgCl 2 -MgSO 4 (3:1), has conductivity values less than the WHO conductivity guideline of 500 us/cm. The lowest conductivity achieved is 94.1 us/cm yielded by Na 2 SO 4 -MgSO 4 (1:1). Based on our selection of MgCl 2 -MgSO 4 (1:1) as the optimal dual-salts draw solution, the attained conductivity of 274µs/cm is comparable to that of tap water. CONCLUSION The FO-NF process is a recyclable process with a low energy requirement and high salt rejection. A dual-salt draw solute is recommended to achieve high water flux in FO water flux and salt rejection in NF. The FO-NF process is a promising alternative technology for seawater desalination to produce drinkable product water that meets the WHO drinking water guidelines. The combination of magnesium chloride and magnesium sulfate yielded better water flux than sodium sulfate and magnesium sulfate. The magnesium chloride-magnesium sulfate (1:3) obtained better flux and rejection in NF while 3:1 excelled in FO. Hence, it was concluded that the 1:1 was the optimum proportion. Additional improvements can be made by optimizing the concentration of the draw solution to obtain a reasonably high water flux. Another aspect will be to investigate membrane performance in terms of flux and rejection. Implications include the possibility of scaling due to the high concentration of draw solutes used, causing inorganic fouling on both the FO and NF membranes. ACKNOWLEDGEMENTS We would like to extend our gratitude to our mentors, Dr Ng How Yong, Mr Tan Chien Hsiang and Ms Emily Li, for providing us with much guidance throughout our project. 10

11 BIBLIOGRAPHY OF REFERENCES [1] Batchelder, G.W. Process for the demineralization of water. US Patent 3, 171,799, [2] D.N. Glew, Process for Liquid Recovery and Solution Concentration, US Patent 3,216,930, [3] Frank, B.S., Desalination of sea water. US Patent 3,670,897, [4] Kravath, R.E.; Davis, J.A. Desalination of seawater by direct osmosis. Desalination, 16, 1975, [5] Stache, K. Apparatus for transforming sea eater, brackish water, polluted water or the like into a nutritious drink by means of osmosis. US Patent 4,879,030, [6] J.R. McCutcheon, R.L. McGinnis, M. Elimelech, A novel ammonia carbon dioxide forward (direct) osmosis desalination process. Desalination 174 (2005) [7] M. Elimelech, Yale constructs forward osmosis desalination pilot plant. Membr. Technol (2007) 7-8. [8] R.W. Holloway, A.E. Childress, K.E. Dennett and T.Y. Cath, Forward osmosis for concentration of anaerobic digester centrate. Water Research 41 (2007) [9] T.Y. Cath, A.E. Childress, M. Elimelech, Forward Osmosis: Principles, Applications and Recent Developments. J. Membr. Sci., 281, 2006, [10] M.I. Dova, K.B. Petrotos, H.N. Lazarides, On the direct osmotic concentration of liquid foods. Part I: Impact of process parameters on process performance. J. Food Eng. 78 (2007) [11] W. Tang, H.Y. Ng, Concentration of brine by forward osmosis: Performance and influence of membrane structure. Desalination 224 (2008) [12] H.Y. Ng, W. Tang, W. Wong, Performance of forward (Direct) osmosis process: membrane structure and transport phenomenon. Environ. Sci. Technol., 40, 2006,

Forward Osmosis Reverse Osmosis Process Offers a Novel Hybrid Solution for Water Purification and Reuse

Forward Osmosis Reverse Osmosis Process Offers a Novel Hybrid Solution for Water Purification and Reuse Forward osmosis (FO) is an osmotically driven membrane process that uses osmotic pressure of concentrated solutions, including seawater, to extract clean water from low salinity solutions. In a new approach,

More information

A Novel Hybrid Forward Osmosis Process for Drinking Water AugmentaQon using Impaired Water and Saline Water Sources

A Novel Hybrid Forward Osmosis Process for Drinking Water AugmentaQon using Impaired Water and Saline Water Sources A Novel Hybrid Forward Osmosis Process for Drinking Water AugmentaQon using Impaired Water and Saline Water Sources Tzahi Cath, Carl Lundin, Jörg Drewes Advanced Water Technology Center (AQWATEC) Division

More information

Challenges in Forward Osmosis of Seawater Using Ammonium Bicarbonate as Osmotic Agent

Challenges in Forward Osmosis of Seawater Using Ammonium Bicarbonate as Osmotic Agent American Journal of Water Resources, 2013, Vol. 1, No. 3, 51-55 Available online at http://pubs.sciepub.com/ajwr/1/3/6 Science and Education Publishing DOI:10.12691/ajwr-1-3-6 Challenges in Forward Osmosis

More information

A novel ammonia-carbon dioxide forward (direct) osmosis desalination process

A novel ammonia-carbon dioxide forward (direct) osmosis desalination process Desalination 174 (2005) 1 11 A novel ammonia-carbon dioxide forward (direct) osmosis desalination process Jeffrey R. McCutcheon a, Robert L. McGinnis b, Menachem Elimelech a * a Department of Chemical

More information

FULL-SCALE FEASIBILITY OF THE FO-MBR PROCESS FOR WASTEWATER RECLAMATION

FULL-SCALE FEASIBILITY OF THE FO-MBR PROCESS FOR WASTEWATER RECLAMATION FULL-SCALE FEASIBILITY OF THE FO-MBR PROCESS FOR WASTEWATER RECLAMATION Marina Arnaldos 1, Teresa de la Torre 1, Carlos Rodríguez 1, Jorge Malfeito 1 1. Acciona Agua, SA R&D Department, Barcelona, CAT,

More information

QUALITY IMPROVEMENT OF WATER RESOURCES BY REMOVAL OF MERCURY AND LEAD CONTAMINANTS THROUGH FORWARD OSMOSIS (FO) TECHNOLOGY WITH VIBRATING MEMBRANE

QUALITY IMPROVEMENT OF WATER RESOURCES BY REMOVAL OF MERCURY AND LEAD CONTAMINANTS THROUGH FORWARD OSMOSIS (FO) TECHNOLOGY WITH VIBRATING MEMBRANE International Journal of Civil Engineering and Technology (IJCIET) Volume 8, Issue 12, December 2017, pp. 937 950, Article ID: IJCIET_08_12_102 Available online at http://http://www.iaeme.com/ijciet/issues.asp?jtype=ijciet&vtype=8&itype=12

More information

Forward Osmosis Membrane. Bioreactor for Water Reuse

Forward Osmosis Membrane. Bioreactor for Water Reuse Forward Osmosis Membrane Bioreactor for Water Reuse BY ZHANG JUNYOU (B. Eng. Wuhan Univ.) A THESIS SUBMITTED FOR THE DEGREE OF MASTER OF ENGINEERING DEPARTMENT OF CIVIL AND ENVIRONMENTAL ENGINEERING NATIONAL

More information

Membrane-Based Technologies for Sustainable Production of Power

Membrane-Based Technologies for Sustainable Production of Power Membrane-Based Technologies for Sustainable Production of Power Menachem Elimelech Department of Chemical & Environmental Engineering Yale University Water-Energy Nexus Symposium, January 29, 213, Exhibition

More information

OsmoBC Integrated Membrane Systems

OsmoBC Integrated Membrane Systems OsmoBC Integrated Membrane Systems For Industrial Wastewater Treatment Fluid Technology Solutions, Inc. OsmoF2O FO Membranes HBCR High Brine Concentrator OsmoZLD Treatment Process INTEGRA Disk Filtration

More information

A study of Forward Osmosis Performance and its Application on Sodium Succinate Feed Solution Using Ionic Salt Draw Solution

A study of Forward Osmosis Performance and its Application on Sodium Succinate Feed Solution Using Ionic Salt Draw Solution International Journal of Biomass & Renewables, 5(3) Special Issue : 8-13, 2016 A study of Forward Osmosis Performance and its Application on Sodium Succinate Feed Solution Using Ionic Salt Draw Solution

More information

Desalination by ammonia carbon dioxide forward osmosis: Influence of draw and feed solution concentrations on process performance

Desalination by ammonia carbon dioxide forward osmosis: Influence of draw and feed solution concentrations on process performance Journal of Membrane Science 278 (2006) 114 123 Desalination by ammonia carbon dioxide forward osmosis: Influence of draw and feed solution concentrations on process performance Jeffrey R. McCutcheon, Robert

More information

PRESENTATION OF DESALINATION VIA REVERSE OSMOSIS

PRESENTATION OF DESALINATION VIA REVERSE OSMOSIS Via Pietro Nenni, 15-27058 VOGHERA ITALY Tel. +39 0383 3371 Fax +39 0383 369052 E-mail: info@idreco.com PRESENTATION OF DESALINATION VIA REVERSE OSMOSIS Reverse osmosis is the finest level of filtration

More information

BENCH-SCALE TESTING OF SEAWATER DESALINATION USING NANOFILTRATION

BENCH-SCALE TESTING OF SEAWATER DESALINATION USING NANOFILTRATION BENCH-SCALE TESTING OF SEAWATER DESALINATION USING NANOFILTRATION Catherine J. Harrison 1, Amy E. Childress 1, Yann A. Le Gouellec 2, and Robert C. Cheng 3 1 University of Nevada, Reno Department of Civil

More information

Engineering & Equipment Division

Engineering & Equipment Division Since their development as practical unit operations in the late 1950 s and early 1960 s, reverse osmosis (RO) and ultra filtration (UF) have been continually expanding the scope of their applications.

More information

Optimization of FO System for the Utilization of RO Brine. EUSEBIO, Ramon Christian De La Salle University Manila, Philippines

Optimization of FO System for the Utilization of RO Brine. EUSEBIO, Ramon Christian De La Salle University Manila, Philippines Optimization of FO System for the Utilization of RO Brine EUSEBIO, Ramon Christian De La Salle University Manila, Philippines Climate Change Global Warming Increase in Surface Temperature Increase in Sea

More information

Rania Sabry, A. G. Gadallah, Sahar S. Ali, Hanaa M. Ali, Hanaa Gadallah*

Rania Sabry, A. G. Gadallah, Sahar S. Ali, Hanaa M. Ali, Hanaa Gadallah* International Journal of ChemTech Research CODEN(USA): IJCRGG ISSN: 0974-4290 Vol.8, No.11, pp 102-112,2015 Application of Forward/Reverse Osmosis Hybrid System for Brackish Water Desalination using El-Salam

More information

Proven Solutions for the Most Challenging Wastewaters

Proven Solutions for the Most Challenging Wastewaters Proven Solutions for the Most Challenging Wastewaters Fluid Technology Solutions, Inc. Fluid Technology Solutions (FTS) is a global leader in water treatment technology, providing innovative and proven

More information

THE UNEXPECTED PERFORMANCE OF HIGHLY PERMEABLE SWRO MEMBRANES AT HIGH TEMPERATURES

THE UNEXPECTED PERFORMANCE OF HIGHLY PERMEABLE SWRO MEMBRANES AT HIGH TEMPERATURES THE UNEXPECTED PERFORMANCE OF HIGHLY PERMEABLE SWRO MEMBRANES AT HIGH TEMPERATURES Authors: Rich Franks, Satish Chilekar, Craig R. Bartels, PhD Presenter : Rich Franks, Sr. Manger Applications, Hydranautics,

More information

HTI - Forward Osmosis Overview MSSC 2012

HTI - Forward Osmosis Overview MSSC 2012 HTI - Forward Osmosis Overview MSSC 2012 Introduction to Forward Osmosis at HTI Founded in 1987 as Osmotek, Inc., HTI is located in Albany, OR A new R & D facility was opened in August, 2010 and is located

More information

Forward Osmosis: Progress and Challenges

Forward Osmosis: Progress and Challenges Forward Osmosis: Progress and Challenges Menachem Elimelech Department of Chemical and Environmental Engineering Yale University New Haven, Connecticut 2014 Clarke Prize Conference, November 7, 2014, Huntington

More information

Forward Osmosis Principles, Trends, and Applications

Forward Osmosis Principles, Trends, and Applications Forward Osmosis Principles, Trends, and Applications Tzahi Y. Cath Department of Civil and Environmental Engineering Colorado School of Mines Golden, Colorado DesalTech 215 San Diego, CA August 28, 215

More information

Using a Novel Hybrid NF-RO to Enhance Sodium Chloride Removal

Using a Novel Hybrid NF-RO to Enhance Sodium Chloride Removal Using a Novel Hybrid NF-RO to Enhance Sodium Chloride Removal November 14, 2018 WateReuse Webcast Series 2018 by the WateReuse Association A Few Notes Before We Start Today s webcast will be 60 minutes.

More information

REVERSE OSMOSIS AND FORWARD OSMOSIS LABORATORY EXPERIMENTS

REVERSE OSMOSIS AND FORWARD OSMOSIS LABORATORY EXPERIMENTS REVERSE OSMOSIS AND FORWARD OSMOSIS LABORATORY EXPERIMENTS Jeffrey McCutcheon Associate Professor University of Connecticut Department of Chemical & Biomolecular Engineering View video of lecture here:

More information

Desalination 352 (2014) Contents lists available at ScienceDirect. Desalination. journal homepage:

Desalination 352 (2014) Contents lists available at ScienceDirect. Desalination. journal homepage: Desalination 35 (1) 1 135 Contents lists available at ScienceDirect Desalination journal homepage: www.elsevier.com/locate/desal A novel analysis of reverse draw and feed solute fluxes in forward osmosis

More information

Energy-Efficient Textile Dyeing Effluent Recycling

Energy-Efficient Textile Dyeing Effluent Recycling Efficient Effluent Recycling Jai Swaminathan 1 Energy-Efficient Textile Dyeing Effluent Recycling Jaichander Swaminathan Prof. John H. Lienhard V Dept. of Mechanical Engineering Problem: Cheap Zero Discharge

More information

Influence of osmotic energy recovery/osmotic dilution on seawater desalination energy demand. M. Vanoppen, S. Derese, A. Bakelants, A.

Influence of osmotic energy recovery/osmotic dilution on seawater desalination energy demand. M. Vanoppen, S. Derese, A. Bakelants, A. Influence of osmotic energy recovery/osmotic dilution on seawater desalination energy demand Abstract M. Vanoppen, S. Derese, A. Bakelants, A. Verliefde Supplying fresh, potable water to an ever increasing

More information

Advances in Membrane Performance

Advances in Membrane Performance Advances in Membrane Performance Introduction Rich Franks, Mark Wilf and Craig Bartels Hydranautics Since manufacturing the first RO elements in the 1960s, steady advances in RO technology have significantly

More information

Membrane Desalination Technology

Membrane Desalination Technology Membrane Desalination Technology Desalination, or demineralization is a treatment process that removes salt and other minerals from brackish water and seawater to produce high quality drinking water. Various

More information

A novel ammonia carbon dioxide osmotic heat engine for power generation

A novel ammonia carbon dioxide osmotic heat engine for power generation Available online at www.sciencedirect.com Journal of Membrane Science 305 (2007) 13 19 Rapid communication A novel ammonia carbon dioxide osmotic heat engine for power generation Robert L. McGinnis, Jeffrey

More information

Polymer assisted forward osmosis for desalination and water reuse

Polymer assisted forward osmosis for desalination and water reuse Polymer assisted forward osmosis for desalination and water reuse Xinying Wang Illinois Sustainable Technology Center Earth s water percentage 71% Earth surface is covered by water Only 0.3% of the fresh

More information

Texas Desal 2014 Reverse Osmosis Membrane Basics How and Why Membranes Work Dan Muff - Toray

Texas Desal 2014 Reverse Osmosis Membrane Basics How and Why Membranes Work Dan Muff - Toray Texas Desal 2014 Reverse Osmosis Membrane Basics How and Why Membranes Work Dan Muff - Toray Spiral Module History 1960 s - 2012 1964 - Spiral Wound Module Patented 1969 - Global RO Module Sales $1 million

More information

Desalination R&D and Applications in Electric Power Generation

Desalination R&D and Applications in Electric Power Generation Desalination R&D and Applications in Electric Power Generation EPRI Workshop on Advanced Cooling July 8-9, 8 2008 Mike Hightower Sandia National Laboratories mmhight@sandia.gov, 505-844-5499 Sandia is

More information

A New Class of Draw Solutions for Minimizing Reverse Salt Flux to Improve Forward Osmosis Desalination. Guo b, Chi-Wang Li c

A New Class of Draw Solutions for Minimizing Reverse Salt Flux to Improve Forward Osmosis Desalination. Guo b, Chi-Wang Li c A New Class of Draw Solutions for Minimizing Reverse Salt Flux to Improve Forward Osmosis Desalination Hau Thi Nguyen a, Nguyen Cong Nguyen a, Shiao-Shing Chen a*, Huu Hao Ngo b*, Wenshan Guo b, Chi-Wang

More information

Aquaporin Inside Forward Osmosis Technology

Aquaporin Inside Forward Osmosis Technology Aquaporin Inside Forward Osmosis Technology WHAT IS FORWARD OSMOSIS (FO)? solution Low osmotic pressure (low TDS) Draw solution (high TDS) Aquaporin Inside FO is a gentle process that transports water

More information

Membrane Processes to Address the Global Challenge of Desalination

Membrane Processes to Address the Global Challenge of Desalination Membrane Processes to Address the Global Challenge of Desalination Amy E. Childress Department of Civil and Environmental Engineering University of Nevada, Reno 2007 U.. Frontiers of Engineering ymposium

More information

Optimal Design of a Hybrid Membrane System Combining Reverse and Forward Osmosis for Seawater Desalination

Optimal Design of a Hybrid Membrane System Combining Reverse and Forward Osmosis for Seawater Desalination Optimal Design of a Hybrid Membrane System Combining Reverse and Forward Osmosis for Seawater Desalination Raquel Salcedo-Diaz*, Ruben Ruiz-Femenia, Jose A. Caballero Department of Chemical Engineering,

More information

Journal of Membrane Science

Journal of Membrane Science Journal of Membrane Science 344 (2009) 1 5 Contents lists available at ScienceDirect Journal of Membrane Science journal homepage: www.elsevier.com/locate/memsci Rapid communication On RO membrane and

More information

Solutions Industry pioneers in spiral membrane technology

Solutions Industry pioneers in spiral membrane technology Water & Wastewater Spiral Wound Solutions Industry pioneers in spiral membrane technology Lenntech info@lenntech.com Tel. +31-152-610-900 www.lenntech.com Fax. +31-152-616-289 The Market Nobody knows spiral

More information

Fabrication of Reverse Osmosis Spiral Wound Membranes using Local Materials

Fabrication of Reverse Osmosis Spiral Wound Membranes using Local Materials Fabrication of Reverse Osmosis Spiral Wound Membranes using Local Materials Associate Prof. Heba Abdallah Chemical Engineering & Pilot plant Dept. Engineering Research Division Flat Sheet Membrane Centre

More information

Reverse Osmosis. Background to Market and Technology

Reverse Osmosis. Background to Market and Technology Reverse Osmosis Background to Market and Technology 1 Technology and Applications Reverse osmosis has been commercial for over 25 years. 60MLD plants built in Saudi Arabia 20 years ago. Current sales of

More information

Technical Presentation RO Basics. MWQA October Bill Loyd Technical Services & Development Dow Water & Process Solutions

Technical Presentation RO Basics. MWQA October Bill Loyd Technical Services & Development Dow Water & Process Solutions Technical Presentation RO Basics MWQA October 2017 Bill Loyd Technical Services & Development Dow Water & Process Solutions Factors that Impact RO Performance Temperature Pressure Salt Concentration Feed

More information

CALIFORNIA S DESALINATION AMENDMENT: OPPORTUNITIES FROM THE COLOCATION OF DESAL FACILITIES WITH WASTEWATER TREATMENT PLANTS.

CALIFORNIA S DESALINATION AMENDMENT: OPPORTUNITIES FROM THE COLOCATION OF DESAL FACILITIES WITH WASTEWATER TREATMENT PLANTS. CALIFORNIA S DESALINATION AMENDMENT: OPPORTUNITIES FROM THE COLOCATION OF DESAL FACILITIES WITH WASTEWATER TREATMENT PLANTS Andrea Achilli, PhD, PE, Humboldt State University, 1 Harpst St., Arcata, CA

More information

TECHNICAL NOTE Permeate recovery and flux maximization in semibatch reverse osmosis

TECHNICAL NOTE Permeate recovery and flux maximization in semibatch reverse osmosis TECHNICAL NOTE Permeate recovery and flux maximization in semibatch reverse osmosis R. L. Stover* Most reverse osmosis (RO) and nanofiltration (NF) processes operate as once through or plug flow (PF) systems

More information

Closed-Circuit Desalination

Closed-Circuit Desalination Closed-Circuit Desalination Instructors David Paul Dr. Rick Stover David H. Paul, Inc. Desalitech, Inc. dpaul@dhptraining.com info@desalitech.com Today s Webinar 40 minute presentation David gives Intro

More information

ISSN: [Utama et al., 8(1): January, 2019] Impact Factor: 5.164

ISSN: [Utama et al., 8(1): January, 2019] Impact Factor: 5.164 IJESRT INTERNATIONAL JOURNAL OF ENGINEERING SCIENCES & RESEARCH TECHNOLOGY DESALINATION REJECT WATER UTILIZATION for REVERSE OSMOSIS PLANT RAW WATER Komang Gede Nara Utama*, Eko Supriyanto*, Matradji**,

More information

Novel Technology for Concentration of Brine Using Membrane-Based System

Novel Technology for Concentration of Brine Using Membrane-Based System Novel Technology for Concentration of Brine Using Membrane-Based System Membrane-based brine concentrator is a major technological breakthrough in brine concentration technology that can help reduce the

More information

INNOVATIVE APPROACHES FOR SUSTAINABLE ENERGY EFFICIENT SWRO DESALINATION

INNOVATIVE APPROACHES FOR SUSTAINABLE ENERGY EFFICIENT SWRO DESALINATION INNOVATIVE APPROACHES FOR SUSTAINABLE ENERGY EFFICIENT SWRO DESALINATION Prof. Syed Javaid Zaidi QAFAC Chair Professor Center for Advanced Materials Qatar University Introduction Global Needs for Desalination

More information

Brackish Ground Water Desalination: Challenges to Inland Desalination Technologies (It sure ain t seawater desalination)

Brackish Ground Water Desalination: Challenges to Inland Desalination Technologies (It sure ain t seawater desalination) Brackish Ground Water Desalination: Challenges to Inland Desalination Technologies (It sure ain t seawater desalination) Bruce Thomson Dept. of Civil Engineering University of New Mexico (bthomson@unm.edu)

More information

TREATING BRACKISH WATER IN SANDOVAL COUNTY FEBRUARY 19, 2010

TREATING BRACKISH WATER IN SANDOVAL COUNTY FEBRUARY 19, 2010 TREATING BRACKISH WATER IN SANDOVAL COUNTY FEBRUARY 19, 2010 Project Background Sandoval County drilled two exploratory wells in 2007 in Rio Puerco Basin/SE portion of San Juan Basin Penetrated brackish

More information

OMBReuse: Osmotic processes for water recycling

OMBReuse: Osmotic processes for water recycling OMBReuse: Osmotic processes for water recycling G. Blandin 1, J.Comas 1,2, I. Rodriguez-Roda 1,2, 1 LEQUIA, Institute of the environment, University of Girona, Spain 2 ICRA, Catalan Institute for Water

More information

USOO A United States Patent (19) 11 Patent Number: 5,900,151 Thorsen et al. (45) Date of Patent: May 4, (51) Int. Cl...

USOO A United States Patent (19) 11 Patent Number: 5,900,151 Thorsen et al. (45) Date of Patent: May 4, (51) Int. Cl... USOO5900151A United States Patent (19) 11 Patent Number: 5,900,151 Thorsen et al. (45) Date of Patent: May 4, 1999 54 METHOD FOR SULPHATE REMOVAL 5,458,781 10/1995 Lin... 210/651 MAGNESIUM CHLORIDE BRINE

More information

RO System Design & CSMPRO v6.0 Program

RO System Design & CSMPRO v6.0 Program RO System Design & CSMPRO v6.0 Program CONTENTS 1 System Design 2 CSMPRO v6.0 Introduction 1 1 System Design 2 Consideration of Feed Source, Application The membrane system design depends on Feed Source,

More information

ACADEMIC APPOINTMENTS and PROFESSIONAL EXPERIENCE

ACADEMIC APPOINTMENTS and PROFESSIONAL EXPERIENCE Ngai Yin Yip, Ph.D. Assistant Professor Department of Earth and Environmental Engineering Columbia University 500 W 120th Street, 1038 New York, NY 10027 Phone: 908 340 9761 Email: nyy2002@columbia.edu

More information

ACADEMIC APPOINTMENTS and PROFESSIONAL EXPERIENCE

ACADEMIC APPOINTMENTS and PROFESSIONAL EXPERIENCE Ngai Yin Yip, Ph.D. Assistant Professor Columbia University 500 W 120th Street, 1038 New York, NY 10027 Phone: 908 340 9761 Email: nyy2002@columbia.edu or yipngaiyin@gmail.com ResearcherID, Google Scholar

More information

CHEMICAL ENGINEERING LABORATORY CHEG 4137W/4139W. Osmotic Separations: Reverse and Forward Osmosis

CHEMICAL ENGINEERING LABORATORY CHEG 4137W/4139W. Osmotic Separations: Reverse and Forward Osmosis CHEMICAL ENGINEERING LABORATORY CHEG 4137W/4139W Osmotic Separations: Reverse and Forward Osmosis Objective: The objective of this experiment is to evaluate the performance of various membranes when used

More information

Urine concentration by forward osmosis process

Urine concentration by forward osmosis process The 13 th IWA specialized conference on small water and wastewater systems The 5 th IWA specialized conference on resourcesoriented sanitation September 14 th ~16 th, 216 Urine concentration by forward

More information

Effect of Draw Solution On The Treatment of Humic Acid In Forward Osmosis Process

Effect of Draw Solution On The Treatment of Humic Acid In Forward Osmosis Process Effect of Draw Solution On The Treatment of Humic Acid In Forward Osmosis Process Ryan Yeo Whye Seong and Mazrul Nizam Abu Seman Faculty of Chemical and Natural Resources Engineering Universiti Malaysia

More information

Saltworks Technologies

Saltworks Technologies As regulations on FGD wastewater tighten, additional treatment is required. Often, this is chemically intense, and high cost. The best means to lower treatment costs is to reduce the volume of wastewater

More information

REJECTION OF CHLORIDE SALTS BY NANOFILTRATION MEMBRANES IN BRACKISH DESALINATION

REJECTION OF CHLORIDE SALTS BY NANOFILTRATION MEMBRANES IN BRACKISH DESALINATION REJECTION OF CHLORIDE SALTS BY NANOFILTRATION MEMBRANES IN BRACKISH DESALINATION A. A. Abuhabib¹,*, A. W. Mohammad², RakmiAbd.Rahman², and Ahmad H. El-Shafie¹ ¹Department of Civil and Strutcture Engineering,

More information

Optimum RO System Design with High Area Spiral Wound Elements

Optimum RO System Design with High Area Spiral Wound Elements Optimum RO System Design with High Area Spiral Wound Elements Craig Bartels Ph. D, Masahiko Hirose, Stefan Rybar Ph. D and Rich Franks Hydranautics A Nitto Denko Company. Oceanside, CA Abstract The membrane

More information

A Comprehensive Bench- and Pilot-Scale Investigation of Trace Organic Compound Rejection by Forward Osmosis

A Comprehensive Bench- and Pilot-Scale Investigation of Trace Organic Compound Rejection by Forward Osmosis A Comprehensive Bench- and Pilot-Scale Investigation of Trace Organic Compound Rejection by Forward Osmosis SUPPORTING INFORMATION Nathan T. Hancock 1, Pei Xu 1, Dean M. Heil 1, Christopher Bellona 2,

More information

Journal of Membrane Science

Journal of Membrane Science Journal of Membrane Science 318 (2008) 458 466 Contents lists available at ScienceDirect Journal of Membrane Science journal homepage: www.elsevier.com/locate/memsci Influence of membrane support layer

More information

Performance Comparison of Thin-film Composite Forward Osmosis Membranes

Performance Comparison of Thin-film Composite Forward Osmosis Membranes Performance Comparison of Thin-film Composite Forward Osmosis Membranes Winny Fam 1, Sherub Phuntsho 1, Jong Hwa Lee 2 and Ho Kyong Shon 1,* 1 School of Civil and Environmental Engineering, University

More information

Reuse of Refinery Treated Wastewater in Cooling Towers

Reuse of Refinery Treated Wastewater in Cooling Towers Iran. J. Chem. Chem. Eng. Vol. 27, No. 4, 28 euse of efinery Treated Wastewater in Cooling Towers Nikazar, Manouchehr* + ; Jamshidi, Mishana Faculty of Chemical Engineering, Amirkabir University of Technology,

More information

Low Fouling and Energy Consumption two-stage Forward and Reverse Osmosis desalination Process

Low Fouling and Energy Consumption two-stage Forward and Reverse Osmosis desalination Process Low Fouling and Energy Consumption two-stage Forward and Reverse Osmosis desalination Process Malak Hamdan Energy and Water Security Workshop, 15-17 February 2015, (Doha) Qatar 1 Overview of Presentation

More information

Novel Thermally/Chemically Resistant Nanofiltration Membranes for Sustainable Reclamation of CBM Produced Water

Novel Thermally/Chemically Resistant Nanofiltration Membranes for Sustainable Reclamation of CBM Produced Water Novel Thermally/Chemically Resistant Nanofiltration Membranes for Sustainable Reclamation of CBM Produced Water Andrew Wait, Tzahi Cath, Nathan Hancock, Xanthe Mayer, Katharine Dahm, Dean Heil, Pei Xu,

More information

Selective Removal Of Sodium And Chloride? Mono-Valent Selective Ion Exchange Membrane For Desalination And Reuse Enhancement.

Selective Removal Of Sodium And Chloride? Mono-Valent Selective Ion Exchange Membrane For Desalination And Reuse Enhancement. Selective Removal Of Sodium And Chloride? Mono-Valent Selective Ion Exchange Membrane For Desalination And Reuse Enhancement Charlie (Qun) He, Carollo Engineers, Inc., CHE@Carollo.com, 4600 E Washington

More information

Research Advance on Draw Solution in Forward Osmosis Process

Research Advance on Draw Solution in Forward Osmosis Process International Conference on Advances in Energy and Environmental Science (ICAEES 2015) Research Advance on Draw Solution in Forward Osmosis Process Boyu Liua, Jiang Yu, Donglang Li, Dan Lv, Juan Zhang

More information

EXPERIMENTAL COMPARISON OF THE PERFORMANCE OF TWO RΕVERSE OSMOSIS DESALINATION UNITS EQUIPPED WITH ENERGY RECOVERY DEVICES

EXPERIMENTAL COMPARISON OF THE PERFORMANCE OF TWO RΕVERSE OSMOSIS DESALINATION UNITS EQUIPPED WITH ENERGY RECOVERY DEVICES EXPERIMENTAL COMPARISON OF THE PERFORMANCE OF TWO RΕVERSE OSMOSIS DESALINATION UNITS EQUIPPED WITH ENERGY RECOVERY DEVICES Evangelos Dimitriou, Essam Sh. Mohamed and George Papadakis Department of Natural

More information

Figure 1. Electrodialysis Stack Saltworks Technologies

Figure 1. Electrodialysis Stack Saltworks Technologies Electrodialysis Reversal (EDR) technology and its specific application fit is explained. Innovations in EDR enables: o Treatment of highly scaling flows without expensive chemical treatment, o Selective

More information

Forward Osmosis: Potential use in Desalination and Water Reuse

Forward Osmosis: Potential use in Desalination and Water Reuse Journal of Membrane and Separation Technology, 2012, 1, 79-93 79 Forward Osmosis: Potential use in Desalination and Water Reuse Ali Altaee * School of Engineering University of the West of Scotland Paisley

More information

Forward osmosis membrane filtration for microalgae harvesting cultivated in sewage effluent

Forward osmosis membrane filtration for microalgae harvesting cultivated in sewage effluent Environ. Eng. Res. 2015; 20(1): 99-104 pissn 1226-1025 http://dx.doi.org/10.4491/eer.2015.005 eissn 2005-968X Forward osmosis membrane filtration for microalgae harvesting cultivated in sewage effluent

More information

FILMTEC Membranes. Tech Manual Excerpts. Principle of Reverse Osmosis. Figure 1: Overview of Osmosis / Reverse Osmosis

FILMTEC Membranes. Tech Manual Excerpts. Principle of Reverse Osmosis. Figure 1: Overview of Osmosis / Reverse Osmosis Tech Manual Excerpts FILMTEC Membranes Principle of Reverse Osmosis How Reverse Osmosis Works The phenomenon of osmosis occurs when pure water flows from a dilute saline solution through a membrane into

More information

A s populations increase and sources of highquality

A s populations increase and sources of highquality E-249 04-10 Desalination Methods for Producing Drinking Water *Justin K. Mechell and Bruce Lesikar A s populations increase and sources of highquality fresh drinking water decrease, many communities have

More information

Forward osmosis as a platform for resource recovery from municipal wastewater - a critical assessment of the literature

Forward osmosis as a platform for resource recovery from municipal wastewater - a critical assessment of the literature University of Wollongong Research Online Illawarra Health and Medical Research Institute Faculty of Science, Medicine and Health 01 Forward osmosis as a platform for resource recovery from municipal wastewater

More information

SEPARATION OF OIL WATER EMULSION FROM CAR WASHES

SEPARATION OF OIL WATER EMULSION FROM CAR WASHES SEPARATION OF OIL WATER EMULSION FROM CAR WASHES S. Panpanit, C. Visvanathan, and S. Muttamara. Environmental Engineering Program, Asian Institute of Technology, P.O. Box: 4, Klong Luang 12120, Pathumthani,

More information

FILMTEC Membranes How FILMTEC Seawater Membranes Can Meet Your Need for High-Pressure Desalination Applications

FILMTEC Membranes How FILMTEC Seawater Membranes Can Meet Your Need for High-Pressure Desalination Applications Tech Fact FILMTEC Membranes How FILMTEC Seawater Membranes Can Meet Your Need for Desalination Higher pressure operation of seawater desalination plants can deliver many benefits, including higher recoveries,

More information

Extreme Recovery Membrane Process and Zero Liquid Discharge Low Temperature Crystallization for Treating Scaling Mine Waters

Extreme Recovery Membrane Process and Zero Liquid Discharge Low Temperature Crystallization for Treating Scaling Mine Waters Extreme Recovery Membrane Process and Zero Liquid Discharge Low Temperature Crystallization for Treating Scaling Mine Waters Malcolm Man, Xiangchun Yin, Zhongyuan Zhou, Ben Sparrow, Susie Lee, Mitch Frank

More information

Nutrients recovery of source separated urine by forward osmosis and a pilot scale resources-oriented sanitation system

Nutrients recovery of source separated urine by forward osmosis and a pilot scale resources-oriented sanitation system School of Environment, Tsinghua University Nutrients recovery of source separated urine by forward osmosis and a pilot scale resources-oriented sanitation system SWWS 2016, 15 September XU Yangyu, ZHOU

More information

Leachate treatment by direct capillary nanofiltration. Hans Woelders Second Intercontinental Landfill Research Symposium Asheville NC, October 2002

Leachate treatment by direct capillary nanofiltration. Hans Woelders Second Intercontinental Landfill Research Symposium Asheville NC, October 2002 Leachate treatment by direct capillary nanofiltration Hans Woelders Second Intercontinental Landfill Research Symposium Asheville NC, October 2002 Presentation: Introduction; present leachate treatment

More information

Reverse Osmosis. Lecture 17

Reverse Osmosis. Lecture 17 Reverse Osmosis Lecture 17 Reverse osmosis Reverse osmosis is a membrane technology used for separation also reffered as Hyperfiltration. In a typical RO system the solution is first filtered through a

More information

Technology Status Assessment

Technology Status Assessment Technology Status Assessment Introduction This report provides a summary of state-of-the-art treatment technologies proposed in the study entitled An Integrated Framework for Treatment and Management of

More information

Membrane Filtration Technology: Meeting Today s Water Treatment Challenges

Membrane Filtration Technology: Meeting Today s Water Treatment Challenges Membrane Filtration Technology: Meeting Today s Water Treatment Challenges Growing global demand for clean water and increasing environmental concerns make membrane filtration the technology of choice

More information

Overview. Heavy Metal Removal Ceramic Microfiltration Presentation. Brackish Water as a New Water Resource For Developing Domestic Energy

Overview. Heavy Metal Removal Ceramic Microfiltration Presentation. Brackish Water as a New Water Resource For Developing Domestic Energy Brackish Water as a New Water Resource For Developing Domestic Energy Energy issues with water and its associated costs for development Drought conditions are requiring the investigation of different water

More information

Feasibility of Nanofiltration process in dual stage in desalination of the seawater

Feasibility of Nanofiltration process in dual stage in desalination of the seawater IOSR Journal of Applied Chemistry (IOSR-JAC) e-issn: 2278-5736. Volume 5, Issue 1 (Jul. Aug. 2013), PP 35-42 Feasibility of Nanofiltration process in dual stage in desalination of the seawater F. El Azhar

More information

A Low-Energy Wastewater Treatment Process for Producing High Quality Reuse Water. Eric Marchand Andrea Achilli Sage Hiibel

A Low-Energy Wastewater Treatment Process for Producing High Quality Reuse Water. Eric Marchand Andrea Achilli Sage Hiibel A Low-Energy Wastewater Treatment Process for Producing High Quality Reuse Water Eric Marchand Andrea Achilli Sage Hiibel About WateReuse The mission of the WateReuse Research Foundation is to build support

More information

New Membranes make Salt Production from Desalination Reject Even More Profitable

New Membranes make Salt Production from Desalination Reject Even More Profitable New Membranes make Salt Production from Desalination Reject Even More Profitable MSc (Hons) Chem Eng, IMD President Solar Energy (Insolation) on the Planet Earth NASA The Earth is receiving approx. 1 368

More information

Innovating Water Treatment Technologies in Managing Water-Energy Demand

Innovating Water Treatment Technologies in Managing Water-Energy Demand Innovating Water Treatment Technologies in Managing Water-Energy Demand L.Y. Lee, S.L. Ong, J.Y. Hu and H.Y. Ng Centre for Water Research, Department of Civil & Environmental Engineering; NUS Environmental

More information

FILMTEC Membranes. Case History. Retrofitting Hollow Fiber Elements with Spiral Wound RO Technology in Agragua, Spain

FILMTEC Membranes. Case History. Retrofitting Hollow Fiber Elements with Spiral Wound RO Technology in Agragua, Spain Case History FILMTEC Membranes Retrofitting Hollow Fiber Elements with Spiral Wound RO Technology in Agragua, Spain Site Information Location: Agragua (Galdar), Canary Islands, Spain Size: 3 x 4,700 m

More information

A Water Solutions Company

A Water Solutions Company STW Water Process & Technologies A Subsidiary of STW Resources Holding A Water Solutions Company OTCQB: STWS STW Water Process & Technologies Capabilities for Municipal & Industrial Applications STW WATER

More information

Advanced Technologies for Produced Water Treatment 2014 PERF Spring Meeting

Advanced Technologies for Produced Water Treatment 2014 PERF Spring Meeting Advanced Technologies for Produced Water Treatment 2014 PERF Spring Meeting Doha, Qatar April 13-14, 2014 Presentation Topics Global Water Sustainability Center Advanced Technologies for Produced Water

More information

IMPROVED BORON REJECTION USING THIN FILM NANOCOMPOSITE (TFN) MEMBRANES IN SEAWATER DESALINATION

IMPROVED BORON REJECTION USING THIN FILM NANOCOMPOSITE (TFN) MEMBRANES IN SEAWATER DESALINATION IMPROVED BORON REJECTION USING THIN FILM NANOCOMPOSITE (TFN) MEMBRANES IN SEAWATER DESALINATION Simon Bae 15WC: 51678 ABOUT Mission To provide customers with the most innovative and highest quality reverse

More information

Overview of Desalination Techniques

Overview of Desalination Techniques Overview of Desalination Techniques The objective of this chapter is to present an overview of current and future technologies applied to the desalination of brackish and seawater to produce freshwater

More information

Separation of oil water emulsion from car washes

Separation of oil water emulsion from car washes Separation of oil water emulsion from car washes S. Panpanit, C. Visvanathan and S. Muttamara Environmental Engineering Program, Asian Institute of Technology, P.O. Box: 4, Klong Luang 12120, Pathumthani,

More information

Summary of Issues Strategies Benefits & Costs Key Uncertainties Additional Resources

Summary of Issues Strategies Benefits & Costs Key Uncertainties Additional Resources Summary of Issues Strategies Benefits & Costs Key Uncertainties Additional Resources KEY POINT: High recovery processes, including zero liquid discharge (ZLD) technologies, have high capital costs and

More information

NEW TECHNOLOGIES FOR THE USE OF WASTE ENERGY FOR DESALINATION

NEW TECHNOLOGIES FOR THE USE OF WASTE ENERGY FOR DESALINATION NEW TECHNOLOGIES FOR THE USE OF WASTE ENERGY FOR DESALINATION DESALINATION PROCESS System A System B H 2 O NaCl H 2 O + NaCl Energy Entropy of System A < Entropy of System B Energy in above equation can

More information

MODELING WATER FLUX IN FORWARD OSMOSIS: IMPLICATIONS FOR IMPROVED MEMBRANE DESIGN

MODELING WATER FLUX IN FORWARD OSMOSIS: IMPLICATIONS FOR IMPROVED MEMBRANE DESIGN MODELING WATER FLUX IN FORWARD OSMOSIS: IMPLICATIONS FOR IMPROVED MEMBRANE DESIGN by Muna Al Mazrooei A Thesis Presented to the Faculty of the American University of Sharjah College of Engineering in Partial

More information

THE ECONOMICS OF SEAWATER REVERSE OSMOSIS DESALINATION PROJECTS. Abstract

THE ECONOMICS OF SEAWATER REVERSE OSMOSIS DESALINATION PROJECTS. Abstract THE ECONOMICS OF SEAWATER REVERSE OSMOSIS DESALINATION PROJECTS Mark Wilf Ph.D., Tetra Tech, 17885 Von Karman Ave.# 400, Irvine, CA 92614, phone 858 4447334, e-mail: mark.wilf@tetratech.com Steve Tedesco,

More information

CITY OF SCOTTSDALE WATER CAMPUS ADOPTED NANOCOMPOSITE RO MEMBRANES FOR INDIRECT POTABLE REUSE. Abstract

CITY OF SCOTTSDALE WATER CAMPUS ADOPTED NANOCOMPOSITE RO MEMBRANES FOR INDIRECT POTABLE REUSE. Abstract CITY OF SCOTTSDALE WATER CAMPUS ADOPTED NANOCOMPOSITE RO MEMBRANES FOR INDIRECT POTABLE REUSE Dian Tanuwidjaja, LG Chem, 21250 Hawthorne Blvd., Suite 330, Torrance, CA 90503 dtan@lg-nanoh2o.com, Ph: 424-218-4020

More information

Treatment and Reuse of Tannery Waste Water by Embedded System

Treatment and Reuse of Tannery Waste Water by Embedded System Modern Applied Science January, 2009 Treatment and Reuse of Tannery Waste Water by Embedded System S.Krishanamoorthi (Corresponding author) Dept. of Civil Engineering Kongu Engineering College, Perundurai,

More information